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Preparation and Implantation of Electrodes for Electrically Kindling VGAT-Cre Mice to Generate a Model for Temporal Lobe Epilepsy
Published on: August 17, 2021
Long-term modifications of epileptogenesis and hippocampal rhythms after prolonged hyperthermic seizures in the mouse
Sophie Hamelin1, Benoit Pouyatos2, Reham Khalaf-Nazzal3
1INSERM, U836, F-38000 Grenoble, France; Univ. Grenoble Alpes, GIN, F-38000 Grenoble, France; CH Bourgoin-Jallieu, Hôpital Pierre Oudot, F-38317 Bourgoin-Jallieu, France.
Abstract:
Complex febrile seizures are often reported in the history of patients with mesio-temporal lobe epilepsy (MTLE) but their role in its physiopathology remains controversial. We postulated that prolonged hyperthermic seizures might, as a "single-hit", modify the hippocampal rhythms, facilitate epileptogenesis and influence subsequent epilepsy when a second-hit already exists or subsequently occurs. To test this hypothesis, we examined the effects of hyperthermic seizures (30min at 40-41°C) at postnatal day 10 on hippocampal activity in C57BL/6J mice in comparison to their littermates in sham conditions (22°C), with or without another insult. Using local field potential, we observed an asymmetry in the hippocampal susceptibility to seize in hyperthermic conditions. When these mice were adult, an asymmetrical increase of low frequency power was also recorded in the hippocampus when compared to sham animals. Using two different "two-hit" protocols, no increase in seizures or hippocampal discharge frequency or duration was observed, either in mice with a genetic CA3 dysplasia (Dcx knockout), or in mice injected with kainate into the dorsal hippocampus at P60. However, in the latter condition, which is reminiscent of MTLE, the hyperthermic seizures accelerated epileptogenesis and decreased the power in the high frequency gamma band, as well as decreasing the coherence between hippocampi and the involvement of the contralateral hippocampus during hippocampal paroxysmal discharges. Our data suggest that a single episode of prolonged hyperthermic seizures does not induce per se, but accelerates epileptogenesis and could lead to an asymmetrical dysfunction in the hippocampal rhythmicity in both physiological and pathological conditions.
Insights
Prolonged febrile seizures in mice did not cause epilepsy alone but accelerated its development. These seizures led to lasting hippocampal rhythm changes, potentially contributing to mesio-temporal lobe epilepsy (MTLE).
Area of Science:
- Neuroscience
- Epilepsy Research
- Mitochondrial Biology
Background:
- The role of complex febrile seizures in the pathophysiology of mesio-temporal lobe epilepsy (MTLE) is debated.
- Hyperthermic seizures may act as a 'single-hit' event, altering hippocampal rhythms and promoting epileptogenesis.
Purpose of the Study:
- To investigate the long-term effects of prolonged hyperthermic seizures on hippocampal activity.
- To determine if hyperthermic seizures accelerate epileptogenesis in established epilepsy models.
Main Methods:
- Induced prolonged hyperthermic seizures (30 min at 40-41°C) in P10 C57BL/6J mice.
- Assessed hippocampal activity using local field potential recordings in juvenile and adult mice.
- Utilized two 'two-hit' protocols: genetic CA3 dysplasia (Dcx knockout) and kainate injection.
Main Results:
- Hyperthermic seizures induced asymmetrical hippocampal susceptibility and increased low-frequency power in adulthood.
- In a kainate-induced MTLE model, hyperthermic seizures accelerated epileptogenesis.
- Accelerated epileptogenesis was associated with decreased gamma band power and altered hippocampal coherence.
Conclusions:
- A single episode of prolonged hyperthermic seizures does not directly cause epilepsy but accelerates epileptogenesis.
- These seizures can lead to asymmetrical hippocampal dysfunction, impacting rhythmicity in physiological and pathological states.
- Findings suggest hyperthermic seizures are a significant risk factor for accelerated epilepsy development, particularly MTLE.

